HMCan: a method for detecting chromatin modifications in cancer samples using ChIP-seq data

HMCan:一种使用 ChIP-seq 数据检测癌症样本中染色质修饰的方法

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作者:Haitham Ashoor, Aurélie Hérault, Aurélie Kamoun, François Radvanyi, Vladimir B Bajic, Emmanuel Barillot, Valentina Boeva

Results

We present HMCan (Histone modifications in cancer), a tool specially designed to analyze histone modification ChIP-seq data produced from cancer genomes. HMCan corrects for the GC-content and copy number bias and then applies Hidden Markov Models to detect the signal from the corrected data. On simulated data, HMCan outperformed several commonly used tools developed to analyze histone modification data produced from genomes without copy number alterations. HMCan also showed superior results on a ChIP-seq dataset generated for the repressive histone mark H3K27me3 in a bladder cancer cell line. HMCan predictions matched well with experimental data (qPCR validated regions) and included, for example, the previously detected H3K27me3 mark in the promoter of the DLEC1 gene, missed by other tools we tested.

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